A vehicle body is provided with a rear wheel at a rear portion, and a front wheel coupled to a handle post. A swing-enabling shaft is rotatably provided on the upper portion of the handle post. A handlebars unit is attached to the swing-enabling shaft such that it can swing forward and backward relative to the vehicle body. When the handlebars unit is swung, a driving mechanism is driven. The driving mechanism rotates the front wheel such that the vehicle body advances, regardless of whether the handlebars unit is swung forward or backward.
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7. A hand-driven vehicle comprising:
a vehicle body;
a plurality of rear wheels rotatably provided at a rear portion of the vehicle body;
a rotatable handle post at a front portion of the vehicle body;
a front wheel rotatably provided at a lower portion of the handle post;
a swing-enabling shaft rotatably provided on an upper portion of the handle post;
a handlebars unit attached to the swing-enabling shaft such that the handlebars unit can swing forward and backward relative to the vehicle body while rotating the swing-enabling shaft forward and backward;
a driving mechanism which outputs a rotational force that rotates the front wheel only in a direction in which the vehicle body advances, in accordance with the forward and backward rotation of the swing-enabling shaft;
a power transmission mechanism which transmits, to the front wheel, the rotational force output from the driving mechanism;
a power interrupting mechanism which is provided between the power transmission mechanism and the driving mechanism, and which is operable to interrupt transmission of power from one of the power transmission mechanism and the driving mechanism to the other; and
handrims which are attached to respective outside portions of the rear wheels, and which are used to rotate the rear wheels manually.
10. A hand-driven vehicle comprising:
a vehicle body;
a rear wheel rotatably provided at a rear portion of the vehicle body;
a rotatable handle post at a front portion of the vehicle body;
a front wheel rotatably provided at a lower portion of the handle post;
a swing-enabling shaft rotatably provided on an upper portion of the handle post;
a handlebars unit attached to the swing-enabling shaft such that the handlebars unit can swing forward and backward relative to the vehicle body while rotating the swing-enabling shaft forward and backward;
a driving mechanism which outputs a rotational force that rotates the front wheel only in a direction in which the vehicle body advances, in accordance with the forward and backward rotation of the swing-enabling shaft;
a power transmission mechanism which transmits, to the front wheel, the rotational force output from the driving mechanism; and
swing angle limiting means for limiting a swing angle of the handlebars unit in a forward/backward direction;
wherein the swing angle limiting means comprises:
engagement shafts which swing in synchrony with a swing movement of the handlebars unit; and
a swing limiting member provided on the vehicle body, wherein the swing limiting member is brought into contact with the engagement shafts in a predetermined swing position when the handlebars unit is swung in the forward/backward direction.
5. hand-driven vehicle comprising:
a vehicle body;
a rear wheel rotatably provided at a rear portion of the vehicle body;
a rotatable handle post at a front portion of the vehicle body;
a front wheel rotatably provided at a lower portion of the handle post;
a swing-enabling shaft rotatably provided on an upper portion of the handle post;
a handlebars unit attached to the swing-enabling shaft such that the handlebars unit can swing forward and backward relative to the vehicle body while rotating the swing-enabling shaft forward and backward;
a driving mechanism which outputs a rotational force that rotates the front wheel only in a direction in which the vehicle body advances, in accordance with the forward and backward rotation of the swing-enabling shaft;
a power transmission mechanism which transmits, to the front wheel, the rotational force output from the driving mechanism; and
a power interrupting mechanism which is provided between the power transmission mechanism and the driving mechanism, and which is operable to interrupt transmission of power from one of the power transmission mechanism and the driving mechanism to the other;
wherein the vehicle body includes a seat section which permits a user to sit thereon, and which includes a back, a holding member attached to a rear surface of the back for elastically holding an upper portion of an object, and a receiver below the holding member to receive a lower end of the object.
8. A hand-driven comprising:
a vehicle body;
a rear wheel rotatably provided at a rear portion of the vehicle body;
a rotatable handle post at a front portion of the vehicle body;
a front wheel rotatably provided at a lower portion of the handle post;
a swing-enabling shaft rotatably provided on an upper portion of the handle post;
a handlebars unit attached to the swing-enabling shaft such that the handlebars unit can swing forward and backward relative to the vehicle body while rotating the swing-enabling shaft forward and backward; and
a driving mechanism which outputs a rotational force that rotates the front wheel only in a direction in which the vehicle body advances, in accordance with the forward and backward rotation of the swing-enabling shaft;
a power transmission mechanism which transmits, to the front wheel, the rotational force output from the driving mechanism; and
a steering angle limiting mechanism which limits a rotational angle of the handle post when the handle post is rotated to change a direction of the front wheel using the handlebars unit;
wherein the steering angle limiting mechanism comprises:
an attachment member including a support portion attached to the handle post; and
a steering angle limiting member including a pair of side portions and a middle portion rotatably supported by the support portion, wherein the pair of side portions are rotatable between a standing position in which the side portions hold the vehicle body therebetween, and a lying position in which the side portions do not oppose the vehicle body.
1. A hand-driven vehicle comprising:
a vehicle body;
a rear wheel rotatably provided at a rear portion of the vehicle body;
a rotatable handle post at a front portion of the vehicle body;
a front wheel rotatably provided at a lower portion of the handle post;
a swing-enabling shaft rotatably provided on an upper portion of the handle post;
a handlebars unit attached to the swing-enabling shaft such that the handlebars unit can swing forward and backward relative to the vehicle body while rotating the swing-enabling shaft forward and backward;
a driving mechanism which outputs a rotational force that rotates the front wheel only in a direction in which the vehicle body advances, in accordance with the forward and backward rotation of the swing-enabling shaft;
a power transmission mechanism which transmits, to the front wheel, the rotational force output from the driving mechanism; and
a power interrupting mechanism which is provided between the power transmission mechanism and the driving mechanism, and which is operable to interrupt transmission of power from one of the power transmission mechanism and the driving mechanism to the other;
wherein the driving mechanism includes:
a pair of first power transmission wheels arranged on the swing-enabling shaft via respective one-way clutches such that one of the pair of first power transmission wheels rotates in synchrony with a forward rotary movement of the swing-enabling shaft, and the other first power transmission wheel rotates in synchrony with a backward rotary movement of the swing-enabling shaft;
a pair of second power transmission wheels rotatably provided at positions corresponding to the pair of first power transmission wheels;
a pair of power transmission members each stretched between one of the pair of first power transmission wheels and a corresponding one of the pair of second power transmission wheels, the pair of power transmission members each transmitting, to a corresponding one of the pair of second power transmission wheels, a rotary movement of a corresponding one of the pair of first power transmission wheels, which rotate in different directions corresponding to the forward rotary movement and the backward rotary movement of the swing-enabling shaft; and
a gear train which converts rotary movements in different directions of the pair of second power transmission wheels into a rotary movement in a single direction;
wherein the power transmission mechanism includes:
a first driving wheel rotated by an output of the driving mechanism via the power interrupting mechanism;
a second driving wheel rotatable together with the front wheel; and
a second power transmission member which is stretched between the first driving wheel and the second driving wheel, and which transmits the output of the driving mechanism to the front wheel; and
wherein the power interrupting mechanism comprises:
a clutch which is interposed between the power transmission mechanism and one of the second power transmission wheels, and which includes a fixed disc which rotates together with the one of the second power transmission wheels and a movable disc that is formed integrally with the first driving wheel and elastically urged toward the fixed disc; and
a clutch lever which interrupts power transmission via the clutch by displacing the movable disc away from the fixed disc when the clutch lever is operated.
2. The hand-driven vehicle according to
3. The hand-driven vehicle according to
4. The hand-driven vehicle according to
6. The hand-driven vehicle according to
9. The hand-driven vehicle according to
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This is a Continuation Application of PCT Application No. PCT/JP03/11726, filed Sep. 12, 2003, which was published under PCT Article 21(2) in Japanese.
This application is based upon and claims the benefit of priority from prior Japanese Patent Applications No. 2002-271722, filed Sep. 18, 2002; and No. 2003-007121, filed Jan. 15, 2003; and No. 2003-283508, filed Jul. 31, 2003; and No. 2003-283510, filed Jul. 31, 2003, the entire contents of all of which are incorporated herein by reference.
1. Field of the Invention
The present invention relates to a manpower vehicle that is moved by swinging a handle lever back and forth relative to the vehicle body.
2. Description of the Related Art
A hand-driven tricycle is known which has a front wheel and a pair of rear wheels rotatably attached to the tricycle body. This hand-driven tricycle is arranged such that driving means can forwardly rotate the front wheel or rear wheels. Since hand-driven tricycles are highly stable during traveling, attention is now being paid to them as vehicles for, in particular, people who have disabilities affecting the legs.
A handle lever as a driving mechanism for driving the front wheel or rear wheels is provided on the upper end of the handle post so that it can swing back and forth relative to the tricycle body. When the user swings the handle lever back and forth by the arms, a driving wheel is rotated through a link mechanism that transmits the swing movement to the wheel. A driven wheel is formed integral with the front wheel or rear wheels. The driving and driven wheels are connected by a chain stretched therebetween. As a result, when the handle is swung, the front wheel or rear wheels are rotated via the chain and driven wheel so that the tricycle moves forward.
Conventional hand-driven tricycles employ a link mechanism for converting the swing movement of the handle lever into rotary movement. In the link mechanism, which connects a plurality of link members so that they can rotate, the link members repeatedly pivot, contract and expand, thereby rotating the driving wheel in one direction, i.e., in the direction in which the tricycle body moves forward.
However, when the link members pivotally connected to each other shift from a straightly extended state to an oblique state, they may well be hard to pivot in a predetermined direction, or may be pivoted in the opposite direction.
Accordingly, even though the handle is swung back and forth, the tricycle may not move forward. Further, if the link members are pivoted in the opposite direction, the tricycle may move backward.
The present invention aims to provide a hand-driven tricycle that can be moved forward by swinging the handle lever, without using a link mechanism.
The hand-driven tricycle according to the invention comprises:
a vehicle body;
a rear wheel rotatably provided at a rear portion of the vehicle body;
a rotatable handle post as a front portion of the vehicle body;
a front wheel rotatably provided at a lower portion of the handle post;
a swing-enabling shaft rotatably provided on an upper portion of the handle post;
a handlebars unit attached to the swing-enabling shaft such that the handlebars unit can swing forward and backward relative to the vehicle body with the swing-enabling shaft rotated forward and backward; and
a driving mechanism which rotates the front wheel such that the vehicle body advances, when the handlebars unit is swung,
the driving mechanism including:
An embodiment of the invention will be described with reference to the accompanying drawings.
The aforementioned handrim 4a is provided outside each of the pair of rear wheels 4. The handrim 4a has an outer diameter slightly smaller than the rear wheels 4, and includes an annular portion 136 having an outer peripheral uneven surface 136a, and a plurality of coupling portions 137 projecting from one edge of the annular portion 136, the annular portion and coupling portions being formed as one body of a synthetic resin.
The handrim 4a may be formed of a metal such as steel or aluminum.
Four to eight coupling portions 137 are provided on the annular portion 136 at regular intervals along the circumference. The distal end of each coupling portion 137 is fixed to the inner surface of the wheel 132 by a screw 138. Accordingly, when the user sits on a seat 8, described later, they can grip and rotate the handrims 4a to thereby rotate the rear wheels 41.
As shown in
A pipe-shaped receiving member 5c projects from the lower end of the seat 8 such that it is slidably mounted around the post. The level of the receiving member 5c can be adjusted relative to the post 5b by a screw 5d. As a result, the vertical and horizontal positions of the seat section 10 relative to the body 1 can be adjusted as indicated by the solid line and chain line in
Footboards 9 for permitting the user sitting on the seat section 10 to place their legs thereon are provided near the middle portion of the beam 2. Each footboard 9 is in the shape of a box that has a peripheral wall for preventing a corresponding leg from slipping off, and a band (not shown) for holding the leg.
As shown in
As seen from
The end of each arm 7a projects to the other end of the short support tube 13, and a stopper ring 15 is fitted on the projecting end. Further, a support shaft 16 is inserted in the opposite ends of the pair of arms 7a such that it can rotate relative to the ends of the pipe members 7a. The support shaft 16 is fixed to one of the arms 7a by a stopper pin 17. As a result, the armrests 7 can pivot from the horizontal position indicated by the solid line in
Since thus, the armrests 7 provided at the opposite ends of the seat 8 can be rotated individually, the user can take and leave the seat section 10 from both sides of the body 1, and further, the user is protected by the right and left armrests 7 from falling down.
The user sitting on the seat section 10 can hold their bodies thereon with a seatbelt (not shown).
A handle member 18 formed of a pipe member is provided, with its longitudinally middle portion fixed, along the upper side of the attachment member 11 that is provided on the rear surface of the back 6. The opposite ends of the handle member 18 are angled at 45 degrees relative to the rear surface of the back 6. Cylindrical grip portions 19 formed of, for example, rubber are provided on the angled portions for permitting a care assistant to grip them.
A holding member 21 obtained by looping an elastic strip member formed of, for example, a synthetic resin and having a predetermined length is provided below the handle member 18, with its middle portion fixed to the rear surface of the back 6. An upper-opening receiving member 22 is provided below the holding member 21 as shown in
The holding member 21 elastically holds a to-be-held object such as an umbrella or cane. In this embodiment, the upper portion of an umbrella 24 is held as indicated by the chain line in
As shown in
A second bracket 34 is secured to each first bracket 33. A front wheel 35 is provided between a pair of second brackets 34 that are separate from each other by a predetermined interval. The front wheel 35 is supported by the second brackets 34 so that it can rotate about an axle 36. A three- to seven-speed manual transmission (not shown) is connected to the axle 36.
An automatic transmission may be provided instead of the manual transmission. In the automatic transmission, the gears are automatically shifted in accordance with the rotational speed of the front wheel 35. Therefore, when the rotational speed of the front wheel 35 is increased or decreased during traveling a flat road or slop, the gears are automatically shifted.
The lower ends of a pair of stems 37 that hold the front wheel 35 therebetween are fixed to the respective second brackets 34. An end of an attachment member 38 is fixed to the upper ends of the stems 37 as shown in
A swing-enabling shaft 41 is rotatably supported by the bearing member 31 provided on the upper end of the handle post 30, via a bearing (not shown) interposed therebetween. As shown in
A pair of grips 43 are provided at the opposite ends of the horizontal portion 42a of the handlebars unit 42. A brake lever 44a is provided near one of the grips 43, a transmission lever 44b for operating the transmission is provided near the other grip 43, and a clutch lever 44c for disconnecting a clutch 65, described later, is provided at the middle of the horizontal portion 42a. The clutch lever 44c and clutch 65 provide a power interrupting mechanism.
When the handlebars unit 42 is swung back and forth, the swing-enabling shaft 41 rotates alternately in the forward and backward directions, whereby the rotation is transmitted to the front wheel 35 by a driving mechanism 47 shown in
The first sprockets 45a and 45b are attached to the swing-enabling shaft 41 via respective one-way clutches 46. One of the one-way clutches 46 permits one of the first sprockets, i.e., the first sprocket 45a, to be synchronized with only one-way rotation, e.g., forward rotation, of the swing-enabling shaft 41, while the other one-way clutch 46 permits the other first sprocket 45b to be synchronized with only the opposite rotary movement of the shaft 41.
In other words, one of the first sprockets, i.e., the first sprocket 45a, rotates together with the swing-enabling shaft 41 when the handlebars unit 42 is swung forward as indicated by the solid line in
The other first sprocket 45b races with respect to the swing-enabling shaft 41 when the handlebars unit 42 is swung in a direction in which it is inclined forward as shown in
As shown in
Another second sprocket 55b as another second power transmission wheel is rotatably fitted, via a bearing 52a, on one end of the second support shaft 52 projecting from the other side of the attachment member 38. As seen from
A first chain 56a as a power transmission member is stretched between one of the first sprockets, i.e., first sprocket 45a, and one of the second sprockets, i.e., second sprocket 55a, while another first chain 56b as another power transmission member is stretched between the other first and second sprockets 45b and 55b.
First and second gears 57a and 57b that are engaged with each other and form a gear train are provided at the other ends of the first and second support shafts 51 and 52. The first gear 57a is fitted on the first support shaft 51, while the second gear 57b is formed integral with the other second sprocket 55b and rotatably provided on the support shaft 52. When the first sprocket 45a rotates together with the swing-enabling shaft 41, their rotary movement is transmitted to the second sprocket 55a via the first chain 56a. As a result, the first support shaft 51 is rotated.
When the other first sprocket 45b rotates together with the swing-enabling shaft 41, their rotation is transmitted to the other second sprocket 55b via the other first chain 56b. As a result, the second support shaft 52 is rotated. When the second support shaft 52 is rotated, its rotation is converted into opposite-directional rotation by the first gears 57b and 57a, and transmitted to the first support shaft 51.
In short, the first support shaft 51 is arranged to rotate in the same direction as the first sprocket 45a, and as the other first sprocket 45b that rotates in the opposite direction to the sprocket 45a.
A first driving wheel 58 formed of a sprocket is provided on the one end of the first support shaft 51 such that it can rotate in synchrony with the first support shaft 51 via the clutch 65 that forms a power interruption mechanism described later. A second driving wheel 59 (see
A second chain 61 is stretched between the first and second driving wheels 58 and 59. Accordingly, when the first support shaft 51 is rotated, the front wheel 15 is rotated in the direction in which the tricycle body 1 advances, via the first driving wheel 58, second chain 61 and second driving wheel 59.
The first and second chains 56a, 56b and 61 are provided with respective chain stretching devices (not shown) for supplying the chains with a predetermined tension so as not to loosen them. These devices prevent detachment of the chains, and make them reliably transmit power.
As shown in
The other end of the operation shaft 66 outwardly projects from a side surface of one of the first sprockets, i.e., the first sprocket 45a, and the first driving wheel 58 is fixedly fitted on the projecting end. A movable disc 71 is secured, by screws 69, to a side surface of the first driving wheel 58 close to the first sprocket 45a. A plurality of engagement pins 72 projecting toward the second sprocket 55a are provided through the movable disc 71 at regular intervals along the circumference.
A stationary disc 73 is secured to a side surface of the second sprocket 55a. A plurality of engagement holes 74 to be engaged with the engagement pins 72 are formed in the stationary disc 73 at regular circumferential intervals corresponding to the engagement pins 72. Where the operation shaft 66 is pressed by the restoration force of the spring 68, the engagement pins 72 are engaged with the engagement holes 74, thereby making the movable disc 71 in pressure contact with the stationary disc 73. In this state, the first driving wheel 58 is rotated by the rotation of the first support shaft 51. Respective covers 76 are provided on the opposite side surfaces of the first driving wheel 58. The covers 76 cover the portion of the second chain 61 that is engaged with the first driving wheel 58.
As shown in
When the clutch lever 44c is operated, the operation lever 75 pivots about the above-mentioned one end from the position indicated by the solid line in
As seen from
As shown in
As seen from
Since the swing angle of the handlebars unit 42 is limited, the upper half of the user body is prevented from being excessively inclined forward or backward. The swing-limiting member 83 and engagement shaft 85 form a swing angle limiting mechanism 86. The forward and backward swing angle of the handlebars unit 42 limited by the swing angle limiting mechanism 86 can be adjusted for the user by exchanging the swing-limiting member 83, which the engagement shaft 85 contacts, for another of a different configuration. Adjustments in light of the height or body shape of the user can be achieved by an adjusting mechanism for changing the height and forward/backward position of the seat section 10, or by adjusting the swing stroke of the handlebars unit 42, as well as by the swing-limiting member 83.
As shown in
The intermediate portion of a U-shaped steering angle limiting member 92 is rotatably supported by the support section 91. The steering angle limiting member 92 can be rotated to and held in a standing position as indicated by the solid lines in
By virtue of this structure, when the handle post 30 is rotated in accordance with the steering movement (i.e., horizontal pivoting movement) of the handlebars unit 42, the front end of one side portion 92a or the other is brought into contact with the beam 2. As a result, the steering angle of the handlebars unit 42 is limited.
The beam 2 has a stopper member 93 for preventing the steering angle limiting member 92 from rotating in the direction indicated by the arrow of
In this embodiment, the steering angle of the handlebars unit 42 is limited to 40 degrees or less. As a result, the handlebars unit 42 is prevented from being sharply angled, thereby preventing the tricycle body 1 from turning over and lying on its side.
If the steering angle limiting member 92 is rotated into the lying position indicated by the chain line in
A torque adjusting member 94 for adjusting the torque of the handle post 30 relative to the cylindrical bearing 3 is provided on the lower end of the cylindrical bearing 3. If the torque of the handle post 30 is adjusted by the torque adjusting member 94, when, for example, a front basket (not shown) is attached to the handle post 30 and a load is contained in the basket, the handlebars unit 42 can be prevented from being unintentionally rotated because of the weight of the load.
In the invention, the driving mechanism 47 is formed of elements for converting the swing movement of the handlebars unit 22 into rotary movement and transmitting the rotary movement to the front wheel 35. The element included in the driving mechanism 47 that transmits the rotary movement of the pair of second sprockets 55a and 55b to the front wheel 35 via the first support shaft 51 provides a power transmission mechanism.
In the hand-driven tricycle constructed as above, to move the tricycle body 1, the user sitting on the seat 8 with their feet placed on the footboards 9 takes the grips 43 of the handlebars unit 42, and swings the handlebars unit 42 forward and backward. When the handlebars unit 42 is pushed forward, the swing-enabling shaft 41 rotates in the direction indicated by arrow X in
When one of the first sprockets, i.e., the sprocket 45a, is rotated to rotate the first support shaft 51 via one of the first chains, i.e., the chain 56a, the rotary movement is converted into reverse rotary movement with respect to that of the first sprocket 45a and transmitted to the other first sprocket 45b via the first and second gears 57a and 57b and the other first chain 56b. However, since the other first sprocket 45b is raced with respect to the swing-enabling shaft 41 by the one-way clutch 46, it does not interrupt the rotation of the swing-enabling shaft 41 in the direction indicated by arrow X.
As a result, the first driving wheel 58 provided at an end of the first support shaft 51 via the clutch 65 rotates in the same direction, and its rotary movement is transmitted to the second driving wheel 59 via the second chain 61. The rotation of the second driving wheel 59 rotates the front wheel 35 in the direction indicated by arrow Z, i.e., in the direction in which the tricycle body 1 advances.
When the forward pushed handlebars unit 42 is backward pulled to rotate the swing shaft 41 in the direction indicated by arrow K in
When the other first sprocket 45b is rotated in the direction indicated by arrow K, its rotary movement is transmitted, via the other first chain 56b, the other second sprocket 55b provided around the second support shaft 52. The rotary movement of the other second sprocket 55b is converted into reverse rotary movement by the second and first gears 57b and 57a, and then transmitted to the first support shaft 51 provided with the first gear 57a.
In other words, when the handlebars unit 42 is backward returned from the forward inclined state to rotate the swing-enabling shaft 41 in the opposite direction, its rotation is converted into reverse rotation by the second and first gears 57b and 57a and then transmitted to the first support shaft 51.
Accordingly, even when the forward pushed handlebars unit 42 is backward returned, the first driving wheel 58 provided around the first support shaft 51 via the clutch 65 is rotated in the same direction as when the handlebars unit 42 is forward pushed, i.e., in the direction indicated by arrow Y in the figure. Therefore, the front wheel 35 can be rotated by the rotary movement of the first driving wheel 58 in the direction in which the tricycle body 1 advances. Thus, the swing movement of the handlebars unit 42 in the forward/backward direction causes the front wheel 35 to be always rotated in the direction in which the tricycle body 1 advances.
When the handlebars unit 42 is backward returned to forwardly rotate the front wheel 35, the rotary movement of the front wheel 35 is transmitted to the first sprocket 45a via the second sprocket 55a provided around the first support shaft 51, and the first chain 56a. At this time, the rotation direction of the first sprocket 45a is opposite to that of the other first sprocket 45b that rotates in synchrony with the swing-enabling shaft 41.
However, when the handlebars unit 42 is backward returned to rotate the swing-enabling shaft 41 in the direction indicated by arrow K, one of the first sprockets, i.e., the first sprocket 45a, is raced by the one-way clutch 46 with respect to the rotation of the swing-enabling shaft 41. Accordingly, the first sprocket 45a does not interrupt the rotation of the swing-enabling shaft 41 in the direction indicated by arrow K.
In the hand-driven tricycle constructed as above, in which the handlebars unit 42 is swung forward and backward to advance the tricycle body 1, the user may want to move back the tricycle body 1, for example, if it has passed a predetermined parking position, or in order to park it in a predetermined position. To move back the tricycle body 1, it is necessary to backwardly rotate the front wheel 35, as well as the rear wheels 4. The rear wheels 4 can be freely rotated backward. On the other hand, when the front wheel 35 is backwardly rotated, the rotary movement of the front wheel 35 is transmitted to the first driving wheel 58 via the second driving wheel 59 and second chain 61 that provide the driving mechanism. As a result, the first driving wheel 58 rotates in the direction opposite to that indicated by arrow Y in
When the first driving wheel 58 rotates in the direction opposite to the direction indicated by arrow Y, the first support shaft 51 rotates in the same direction as the first driving wheel via the clutch 65. The rotary movement of the first support shaft 51 is transmitted to one of the first sprockets, i.e., the first sprocket 45a, via the corresponding one of the first chains, i.e., the first chain 56a. Further, the rotary movement of the first support shaft 51 is converted into reverse rotary movement by the first and second gears 57a and 57b, and then transmitted to the other first sprocket 45b via the other first chain 56b.
As a result, the pair of first sprockets 45a and 45b attempt to simultaneously rotate in opposite directions. In this case, their rotary movements are transmitted to the swing-enabling shaft 41 via the respective one-way clutches 46, thereby disabling the rotation of the swing-enabling shaft 41. This means that the front wheel 35 cannot rotate and hence the tricycle body 1 cannot move back.
In light of the above, to move back the tricycle body 1, the clutch lever 44c is gripped to disengage the clutch 65 so as to interrupt the transmission of power from the front wheel 35 to the driving mechanism 47. In other words, when the front wheel 35 is rotated backward, the rotary movement of the first driving wheel 58 that rotates together with the front wheel 35 via the second driving wheel 59 and second chain 61 is prevented from being transmitted to the first support shaft 51.
As a result, even if the front wheel 35 is rotated backward, the rotary movement of the front wheel 35 is prevented from being converted into opposite directional rotary movements and transmitted to the pair of first sprockets 45a and 45b provided around the swing-enabling shaft 41 of the driving mechanism 47. This enables the front wheel 35 to be smoothly moved backward. In short, the tricycle body 1 can be moved back by backward pushing the tricycle body 1 with the clutch lever 44c gripped. Moreover, since the handlebars unit 42 is prevented from being swung forward or backward during moving back, it does not interfere the moving back operation by the user.
When the tricycle body 1 is moved back, the user may backwardly rotate the rear wheels 4 by operating, using one hand, one of the handrims 4a connected to the rear wheels, with the clutch lever 44c gripped using the other hand. If a care assistant can help the user, they may move back the tricycle body while having the clutch lever 44c gripped by the user and grasping the cylindrical grip portions 19 of the handle member 18 provided on the back 6 of the seat section 10.
The care assistant can move the tricycle body 1 by themselves by gripping the clutch lever 44c to disengage the clutch 65, and grasping the cylindrical grip portions 19 of the handle member 18. If the clutch lever 44c can be held in a gripped state by, for example, a stopper (not shown), the operation for, for example, moving back the tricycle body 1 can be easily performed.
The user can change the direction of travel of the tricycle body 1 by rotating the handle post 30 using the handlebars unit 42 while steering the handlebars unit 42. Thus, the direction of travel of the tricycle body 1 can be smoothly changed. If the steering angle of the handlebars unit 42 is too large, the tricycle body 1 may turn over. However, the rotational angle of the handle post 30, i.e., the steering angle, is set, by the steering angle limiting mechanism 88, to a value falling within a range within which the tricycle body 1 does not turn over, e.g., 40 degrees or less in each of the right and left directions. Therefore, the user can change the direction of travel safely.
The swing angle of the handlebars unit 42 in the forward/backward direction is limited by the swing angle limiting mechanism 86. This enables the user sitting on the seat section 10 to swing the handlebars unit 42 without excessively inclining the upper half of the body in the forward or backward direction, which means that the operation of advancing the tricycle body 1 can be performed relatively easily.
The present invention is not limited to the above-described embodiment. In the embodiment, a description has been given of a tricycle, as a hand-driven vehicle, which has a single front wheel and a pair of rear wheels. However, the invention is also applicable to a four-wheeler having two front wheels and two rear wheels, and a bicycle having a single front wheel and rear wheel.
Further, pulleys and belts may be used in the driving mechanism instead of the sprockets and chains.
Sakai, Yoshio, Ikeda, Shigeru, Ohshita, Shoji
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Executed on | Assignor | Assignee | Conveyance | Frame | Reel | Doc |
Sep 06 2004 | IKEDA, SHIGERU | FRANCE BED CO , LTD | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 015808 | /0119 | |
Sep 06 2004 | OHSHITA, SHOJI | FRANCE BED CO , LTD | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 015808 | /0119 | |
Sep 06 2004 | SAKAI, YOSHIO | FRANCE BED CO , LTD | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 015808 | /0119 | |
Sep 15 2004 | France Bed Co., Ltd. | (assignment on the face of the patent) | / |
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